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首页> 外文期刊>Journal of the Chinese Institute of Engineers >Numerical simulation of heat transfer on nanofluid flow in an annular pipe with simultaneous embedding of porous discs and triangular fins
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Numerical simulation of heat transfer on nanofluid flow in an annular pipe with simultaneous embedding of porous discs and triangular fins

机译:具有同时嵌入多孔圆盘和三角形翅片的环管中纳米流体流动传热的数值模拟

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摘要

In the present study, the effect of simultaneous embedding of triangular fins and porous discs inside an annular pipe on the heat transfer rate is studied. The nanofluid turbulent flow enters the space between the two pipes. Various factors such as the effects of cross-sections of porous disc coverage (S= 0.76, S= 0.42), fin height (H), and the nanoparticles volume fraction on the heat transfer rate and the thermal performance are examined. The results show the increase in the heat transfer rate in an annular pipe containing triangular fins and porous discs at S= 0.42 has its maximum value when H= 0.33, but at S= 0.76 the maximum heat transfer rate occurs in H= 0.267. The increases in the Nusselt number in both cases are high enough to compensate for the pressure loss due to the flow so that the thermal performance would be greater than 1. The results also reveal that the increase in the volume fraction leads to an increase in the Nusselt number, while the increase in the pressure loss at high Reynolds numbers dominates the increase in the heat transfer and causes the thermal performance to become less than 1.
机译:本文研究了在环形管内同时嵌入三角形翅片和多孔圆盘对传热速率的影响。纳米流体湍流进入两个管道之间的空间。研究了各种因素,如多孔圆盘覆盖的横截面(S=0.76,S=0.42)、翅片高度(H)和纳米颗粒体积分数对传热速率和热性能的影响。结果表明,当H=0.33时,在S=0.42时,含有三角形翅片和多孔盘的环形管中的传热率增加最大,但在S=0.76时,最大传热率出现在H=0.267。在这两种情况下,努塞尔数的增加都足以补偿由于流动而产生的压力损失,从而使热性能大于1。结果还表明,体积分数的增加导致努塞尔数的增加,而高雷诺数下压力损失的增加主导了传热的增加,并导致热性能小于1。

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